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Kuraoka, S.

Publications and source records attributed to Kuraoka, S..

2 recordsLinked to original sources

Proteomic and Kinetic Analyses Reveal Discordant Apolipoprotein Turnover and Support a Revised Model of Human Lipoprotein(a) Metabolism

Objective: Lipoprotein(a) [Lp(a)] is a causal risk factor for atherosclerotic cardiovascular disease composed of apolipoprotein(a) [APO(a)] covalently linked to apolipoprotein B100 (APOB). Although plasma Lp(a) concentrations are largely genetically determined, the mechanisms governing Lp(a) metabolism after particle assembly remain poorly understood. We sought to define the Lp(a) proteome and determine the metabolic behavior of APO(a) and APOB within circulating Lp(a) particles using integrated proteomic, kinetic, and imaging approaches. Approach and Results: Sixteen healthy adults underwent stable isotope tracer studies with 2H3-L-leucine and 2H5-glycerol. Lp(a) particles were isolated by APO(a)-specific immunoprecipitation for high-resolution liquid chromatography-mass spectrometry and kinetic analyses, and extracellular vesicles (EVs) were characterized by imaging flow cytometry and super-resolution microscopy. Proteomic analysis identified 92 proteins associated with immuno-isolated Lp(a), enriched in pathways related to immunity, coagulation, and atherogenesis. Lp(a)-APO(a) exhibited a mean fractional clearance rate of 0.04 pools/day, whereas Lp(a)-APOB cleared approximately sevenfold faster (0.25 pools/day), independent of plasma Lp(a) concentration or APO(a) isoform size. Both APO(a) and APOB were detected on circulating EVs, suggesting that EVs may contribute to post-secretory Lp(a) particle remodeling. Conclusion: These integrated human studies demonstrate marked discordance between APO(a) and APOB turnover within circulating Lp(a) particles, challenging the prevailing assumption that both apolipoproteins behave as a single metabolic unit after Lp(a) assembly and supporting a revised model of human Lp(a) metabolism.

physiology↗

Sexual Dimorphism of Plasma and Tissue Proteomes in Human Calcific Aortic Valve Stenosis Pathogenesis

BACKGROUNDCalcific aortic valve stenosis (CAVS) is a global clinical burden, impacting around 2% of the population over 65 years of age. No pharmacotherapeutics exist, with surgical repair and transcatheter valve replacement being the only intervention. Females are underrepresented in studies of CAVS, leading to delay in timely intervention and increased mortality. Histopathology demonstrates female CAVS presents with decreased valvular calcification but increased fibrosis and severity of symptoms. We hypothesize that the underlying molecular mechanisms contributing to disease progression and fibrocalcific burden in AS differs between male and female patients. Our goal for this study is to use previously acquired proteomic datasets of a clinically-defined human AS cohort to examine sex disparities and underlying sex-specific disease signatures. METHODS and RESULTSAge-matched human AS tissue samples (n=4 females, n=14 males) were each segmented into non-diseased, fibrotic, and calcified disease stages and analyzed using LC-MS/MS proteomics and quantitative histopathology. CAVD plasma samples (n=20 females, n=30 males) were analyzed for circulating sex-specific biomarkers via LC-MS/MS. Unbiased principal component analysis shows sex- and stage-specific proteome clustering. AS pathogenesis drove sex-specific disparities in the valvular proteome: 338/1503 total proteins were differentially-enriched by sex across disease stages. Compared to sex-specific non-diseased controls, female fibrotic tissue resulted in 2.75-fold greater number of differentially-enriched proteins than did male fibrotic tissue (female: 42, male: 16; p<0.05 threshold). In contrast, female calcific tissue identified 2.473-fold less differentially-enriched proteins than male calcific tissue (female: 157, male 356; q<0.05 threshold). By Functional Enrichment Analysis revealed specific proteins responsible for the exacerbated valvular fibrosis signature in females, implicated adenosine phosphate metabolism as a potential male-specific driver of AS, and further reinforce the shared contribution of aberrant lipid and cholesterol activity to AS progression in both sexes. CONCLUSIONSWe reveal a sexually-dimorphic AS proteome, including the novel overabundance of ECM remodeling pathways in female calcified aortic valve tissues. This analysis allows for identification of potential sex-specific protein drug targets implicated in AS pathobiology.

pathology↗